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Rubrene crystal field-effect mobility modulation via conducting channel wrinkling

机译:通过传导沟道起皱的Rubrene晶体场效应迁移率调制

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With the impending surge of flexible organic electronic technologies, it has become essential to understand how mechanical deformation affects the electrical performance of organic thin-film devices. Organic single crystals are ideal for the systematic study of strain effects on electrical properties without being concerned about grain boundaries and other defects. Here we investigate how the deformation affects the field-effect mobility of single crystals of the benchmark semiconductor rubrene. The wrinkling instability is used to apply local strains of different magnitudes along the conducting channel in field-effect transistors. We discover that the mobility changes as dictated by the net strain at the dielectric/semiconductor interface. We propose a model based on the plate bending theory to quantify the net strain in wrinkled transistors and predict the change in mobility. These contributions represent a significant step forward in structure-function relationships in organic semiconductors, critical for the development of the next generation of flexible electronic devices.
机译:随着柔性有机电子技术的兴起,了解机械变形如何影响有机薄膜器件的电性能变得至关重要。有机单晶是系统研究应变对电性能的影响的理想选择,而无需担心晶界和其他缺陷。在这里,我们研究了变形如何影响基准半导体红荧烯的单晶的场效应迁移率。起皱的不稳定性用于沿着场效应晶体管中的导电沟道施加不同大小的局部应变。我们发现,电介质/半导体界面处的净应变决定了迁移率的变化。我们提出了一种基于极板弯曲理论的模型,用于量化褶皱晶体管的净应变并预测迁移率的变化。这些贡献代表了有机半导体结构-功能关系方面的重要一步,这对于下一代柔性电子设备的开发至关重要。

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